WO2017017559A1 - Préparation de n-vinylcarboxylamides dans des séries d'unités de réacteur - Google Patents
Préparation de n-vinylcarboxylamides dans des séries d'unités de réacteur Download PDFInfo
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- WO2017017559A1 WO2017017559A1 PCT/IB2016/054284 IB2016054284W WO2017017559A1 WO 2017017559 A1 WO2017017559 A1 WO 2017017559A1 IB 2016054284 W IB2016054284 W IB 2016054284W WO 2017017559 A1 WO2017017559 A1 WO 2017017559A1
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08F—MACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
- C08F126/00—Homopolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a single or double bond to nitrogen or by a heterocyclic ring containing nitrogen
- C08F126/02—Homopolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a single or double bond to nitrogen or by a heterocyclic ring containing nitrogen by a single or double bond to nitrogen
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J19/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J19/0053—Details of the reactor
- B01J19/0066—Stirrers
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J19/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J19/18—Stationary reactors having moving elements inside
- B01J19/1862—Stationary reactors having moving elements inside placed in series
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- B—PERFORMING OPERATIONS; TRANSPORTING
- B01—PHYSICAL OR CHEMICAL PROCESSES OR APPARATUS IN GENERAL
- B01J—CHEMICAL OR PHYSICAL PROCESSES, e.g. CATALYSIS OR COLLOID CHEMISTRY; THEIR RELEVANT APPARATUS
- B01J19/00—Chemical, physical or physico-chemical processes in general; Their relevant apparatus
- B01J19/24—Stationary reactors without moving elements inside
- B01J19/245—Stationary reactors without moving elements inside placed in series
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08F—MACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
- C08F2/00—Processes of polymerisation
- C08F2/01—Processes of polymerisation characterised by special features of the polymerisation apparatus used
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08F—MACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
- C08F2/00—Processes of polymerisation
- C08F2/04—Polymerisation in solution
- C08F2/10—Aqueous solvent
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- C—CHEMISTRY; METALLURGY
- C08—ORGANIC MACROMOLECULAR COMPOUNDS; THEIR PREPARATION OR CHEMICAL WORKING-UP; COMPOSITIONS BASED THEREON
- C08F—MACROMOLECULAR COMPOUNDS OBTAINED BY REACTIONS ONLY INVOLVING CARBON-TO-CARBON UNSATURATED BONDS
- C08F26/00—Homopolymers and copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a single or double bond to nitrogen or by a heterocyclic ring containing nitrogen
- C08F26/02—Homopolymers and copolymers of compounds having one or more unsaturated aliphatic radicals, each having only one carbon-to-carbon double bond, and at least one being terminated by a single or double bond to nitrogen or by a heterocyclic ring containing nitrogen by a single or double bond to nitrogen
Definitions
- the present invention relates to the preparation of polymers of N-vinyl carboxamide comprising the steps of flowing a reaction mixture comprising an aqueous liquid containing one or more polymerisation initiators and a monomer or mixture of monomers comprising N-vinyl carboxamide.
- the process involves carrying out the polymerisation in a reactor system which includes a series of reactor units comprising at least one mixed flow reactor and at least one single pass tubular reactor.
- the process can be operated continuously and has the advantage that polymers of N-vinyl carboxamide can be conveniently produced containing reduced levels of unreacted monomer.
- N-vinyl carboxamide for instance polyvinyl formamide (PVFA)
- PVFA polyvinyl formamide
- a buffered aqueous solution and optional- ly a chain transfer agent are transferred into a stirred vessel and the N-vinyl carboxamide and polymerisation initiator are fed into the vessel during the reaction.
- batch type stirred reactors would be used for this process.
- Such processes have the disadvantage that the solids content must be relatively low in order to allow heat to be removed from the reaction medium. Further, there would tend to be mixing throughout the processes in order to allow the reaction medium to be suitably mixed and allow heat to be suitably dissipated. Additionally, such batch processes tend to give rise to higher maintenance and cleaning costs. Further, such processes tend to result in greater product var- iation in terms of product quality. In addition such batch processes tend to be more labour- intensive and require careful attention of more skilled personnel.
- EP 339371 A describes a continuous process for preparing copolymers of vinyl alcohol and vinyl amine.
- the copolymers do not contain more than 50 mole percent vinyl amine units.
- the process involves polymerising a mixture of vinyl acetate and N-vinyl formamide in a series of continuous stirred tank reactors (CSTR).
- CSTR continuous stirred tank reactors
- the examples appear to employ two continuous stirred tank reactors arranged in series.
- This document refers to ways to deal with unreacted vinyl monomers. Firstly, it is suggested that stripping of unreacted vinyl acetate is possible for continuous processes. Further, it is indicated that stripping may be avoided by fully converting the monomers as in many batch processes.
- N-vinyl formamide or other vinyl amides are more difficult to remove from the solution polymer but suggests that they have higher reactivity than vinyl acetate in the polymerisation and due to the frequent lower levels of incorporation minimise the amount of these monomers present in the final product. It would be desirable to provide a process for preparing polymers of vinyl carboxamides which overcomes the shortcomings of batch or semi-batch processes while achieving high levels of monomer conversion and low levels of residual free monomer.
- a process of producing polymers of a N-vinyl carboxamide comprising the steps of flowing a reaction mixture comprising an aqueous liquid containing at least one polymerisation initiator, N-vinyl carboxamide monomer or a monomer mixture which comprises N-vinyl carboxamide into a reactor system, polymerising the monomer or monomer mixture to produce the polymer of a N-vinyl carboxamide, in which the reactor system comprises a series of reactor units comprising a combination of at least one mixed flow reactor and at least one single pass tubular reactor, wherein
- the at least one mixed flow reactor comprises at least one vessel containing internal and/or external means of mixing
- the at least one single pass tubular reactor comprises a tubular section disposed between two ends, at least one inlet and at least one outlet in which the reaction mixture flows through the single pass tubular reactor only once,
- R and R' are each independently H or lower alkyl, for instance C1-5 alkyl.
- R is H and R' is H or CH3. Therefore preferably the N-vinyl carboxamide is either N- vinylformamide or N-vinylacetamide. Most preferably the N-vinyl carboxamide is N-vinyl formamide.
- the N-vinyl carboxamide for instance N-vinyl formamide or N-vinyl acetamide, may be polymerised alone or with other comonomers.
- the monomer or monomer mixture may comprise from 20 to 100 mole % N-vinyl carboxamide and from 0 to 80 mole % other ethylenically unsaturated monomers. It may be desirable that the monomer or monomer mixture com- prises 50 to 100 mole % N-vinyl carboxamide and 0 to 50 mole % other ethylenically unsaturated monomer.
- the monomer or monomer mixture comprises 70 to 100 mole % N-vinyl carboxamide and 0 to 30 mole % other ethylenically unsaturated monomer. More preferably the N-vinyl carboxamide is polymerised substantially in the absence of any other ethylenically unsaturated monomer. More preferably still N-vinyl formamide and/or N-vinyl acetamide are ho- mopolymerised. Most preferably the process involves the homo-polymerisation of N-vinyl formamide.
- the other ethylenically unsaturated monomers are, for example, mono-ethylenically unsaturated carboxylic acids of 3 to 8 carbon atoms, such as acrylic acid, methacrylic acid, dimethacrylic acid, ethacrylic acid, maleic acid, citraconic acid, methylenemalonic acid, allylacetic acid, vinyl acetic acid, crotonic acid, fumaric acid, mesaconic acid and itaconic acid. From this group of monomers, acrylic acid, methacrylic acid, maleic acid or mixtures of said carboxylic acids would be preferred.
- the mono-ethylenically unsaturated carboxylic acids are used either in the form of the free acids or in the form of their alkali metal, alkaline earth metal or ammonium salts in the copolymerisation.
- sodium hydroxide solution, potassium hydroxide solution, sodium carbonate, potassium carbonate, sodium bicarbonate, magnesium oxide, calcium hydroxide, calcium oxide, gaseous or aqueous ammonia, triethyl amine, ethanolamine, diethanolamine, triethanolamine, morpholine, diethylenetriamine or tetra eth- ylenepentamine can be used.
- Additional other ethylenically unsaturated monomers are, for example, the esters, amides and nitriles of the above-mentioned carboxylic acids, for instance methyl acrylate, ethyl acrylate, methyl methacrylate, ethyl methacrylate, hydroxy ethyl acrylate, hydroxy propyl acrylate, hydroxy butyl acrylate, hydroxy ethyl methacrylate, hydroxy propyl methacrylate, hydroxy isobutyl acrylate, hydroxy isobutyl methacrylate, monomethyl maleate, dimethyl maleate, monoethyl maleate, diethyl maleate, 2-ethylhexyl acrylate, 2-ethylhexyl methacrylate, acrylamide, methac- rylamide, N-dimethyl acrylamide, N-tert-butyl acrylamide, acrylonitrile, methacrylonitrile, dimethyl
- ethylenically unsaturated monomers may also include acrylamido glycolic acid, vinyl sul- phonic acid, allyl sulphonic acid, methallyl sulphonic acid, styrene sulphonic acid, 3- sulphopropyl acrylate, 3-sulphopropyl methacrylate and acrylamido methyl propane sulphonic acid and monomers containing phosphoric acid groups, such as vinyl phosphonic acid, allyl phosphonic acid and acrylamido methyl propane phosphonic acid.
- the monomers containing acid groups can be used in the polymerisation in the form of free acid groups and in the form partially or completely neutralised with bases.
- ethylenically unsaturated monomers may include N-vinylpyrrolidone, N-vinyl ca- prolactam, N-vinyl imidazole, N-vinyl-2-methyl imidazole, N-vinyl-4-methyl imidazole, diallyl dimethyl ammonium chloride, vinyl acetate, vinyl propionate and styrene. It is of course possible to use mixtures of said monomers. These other ethylenically unsaturated monomers may be included only in amounts such that the polymers produced according to the invention are still water-soluble.
- the monomer or mixture of monomers should be free of oxygen entrained therein before carrying out the polymerisation reaction.
- the presence of oxygen in the monomers can result in inhibition or retardation of the polymerisation reaction. Removal or reduction of oxygen is often achieved by passing an inert gas such as nitrogen through the monomer or mixture of monomers and prior to entering the reactor system.
- the monomer or mixture of monomers should be dissolved in aqueous reaction mixture.
- the aqueous reaction mixture is buffered to a desired pH.
- the pH should be from 5.5 to 7.5, preferably from 6.2 to 6.8. Any suitable pH buffer may be used provided that it pro- Jerusalem the desired pH and does not interfere with the polymerisation reaction.
- a suitable pH buffer is a phosphate buffer.
- the mixed flow reactor contains internal and/or external means for mixing.
- the mixed flow reactor may be at least one vessel of any shape or size.
- vessel we mean any container for holding the reaction mixture.
- it may be a tank, such as a stirred tank, for instance a continuous stirred tank reactor (CSTR), or it may be tubular or it may be a mixing unit, or it may even be a pump.
- the mixed flow reactor may comprise one or more such vessels provided that where it comprises only one vessel it has at least one suitable means for mixing and where it comprises more than one vessel the more than one vessel collectively has at least one suitable means for mixing, and suitably contains at least one inlet and at least one outlet.
- Suitable internal means of mixing include one or more moving elements, for instance stirrers, impellers or agitators.
- the suitable internal means of mixing may for instance be a dynamic mixer.
- the internal means may include static mixing elements which achieve mixing by the flow of the reaction mixture through, across or by the static mixing elements.
- the mixed flow reactor may comprise at least one stirred tank, such as at least one continuous stirred tank reactor (CSTR).
- External means of mixing include recycle loops, external dynamic mixers, external static mixers or external pumps.
- external means of mixing may be located before one of the at least one vessels of the mixed flow reactor.
- this may be an arrangement with a tubular vessel equipped with a recycle loop and/or a pump.
- the reaction mixture may exit the tubular vessel through an outlet and a portion of the reaction mixture may be transferred by a recycle loop ahead of the inlet to the tubular vessel.
- the mixed flow reactor may comprise a static mixer or dynamic mixer and a tubular vessel arranged in series and in that sequence.
- a static or dynamic mixer interposed between a pump and the tubular vessel.
- such preferred arrangement may additionally or alternatively contain a recycle loop which would feed a portion of the reaction mixture exiting the tubular vessel back to the reaction mixture before into the static mixer or dynamic mixer.
- a recycle loop it would be normal to include a pump.
- the exact location is not critical.
- the mixed flow reactor may contain all of the mixing elements within one reactor unit. For instance, it is possible that the aforementioned pump and/or static mixer or dynamic mixer is/are located within a tubular vessel.
- the mixed flow reactor does not mandatorily require all or any of internal or external static mixers or a recycle loop provided that the mixed flow reactor provides adequate mixing.
- the mixed flow reactor dimensions are not particularly limited.
- the dimensions of the mixed flow reactor should normally depend on the required residence time and required production capacity.
- the mixed flow reactor may have a volume capacity of between 0.1 m 3 and 100 m 3 .
- the mixed flow reactor may comprise at least one vessel having a diame- ter of from 1 cm to 20 cm.
- reaction mixture may be admitted into the mixed flow reactor through one inlet, although in some cases it may be desirable for the reaction mixture to be admitted into the mixed flow reactor through two or more inlets. In some cases it may even be desirable to intro-za other materials, for instance polymerisation initiators or chain transfer agents, etc., into the mixed flow reactor through one or more inlets.
- the volume of reaction mixture which is recycled through the recycle loop typically may be at least 75% and often at least 80%. In some cases it may be desirable that at least 90% of the reaction mixture is recycled through the recycle loop and in some cases this may be at least 95% or at least 97%.
- the volume of reaction mixture recycled may be as high as 98% or higher but typically will be below 99%.
- the single pass tubular reactor comprises a tubular section disposed between two ends, at least one inlet and at least one outlet.
- the tubular section may have any cross-sectional shape, for instance elliptical, rectangular or a polygonal shape, such as hexagonal or octagonal, but preferably the cross-sectional shape is circular.
- One end may comprise the at least one inlet and the other end may comprise the at least one outlet.
- Each end should be in communication with the ends of the tubular section and form an enclosed volume defined by the tubular section and the two ends.
- Each end may be of any shape but usually will be the same shape and size as the cross-section of the tubular section.
- Each end may have a flat face or alternatively maybe curved, for instance concave or convex, or maybe tapered.
- the at least one inlet and/or the at least one outlet may form the ends with the tubular section.
- a single pass tubular reactor we mean that the reaction mixture flows through this reactor only once. Hence in such an arrangement the reaction mixture passing through or exiting the single pass tubular reactor should not be returned in a recycle loop to the reaction mixture ahead of the single pass tubular reactor.
- the single pass tubular reactor con- tains internal and/or external mixing devices, for instance static mixing elements or baffles which may help distribution of the components of the reaction mixture.
- the at least one single pass tubular reactor contains an internal mixing device this should comprise only static mixing elements and/or baffles, for example as in the case of a static mixer.
- Such internal mixing devices in the at least one single pass tubular reactor should not include dynamic mixers.
- any mixing devices in the at least one single pass tubular reactor distribute the reaction mixture in substantially a radial direction and not essentially in an axial direction. It is preferred that inside the at least one single pass tubular reactor back mixing of the reaction mixture to any significant degree is avoided as much as possible.
- backmixing we mean mixing between reacted and unreacted reactants within the flowing reaction mixture.
- any backmixing should be significantly less than in the at least one mixed flow reactor.
- internal mixing devices may be incorporated into one or more or even all of the single pass tubular reactors.
- none of the at least one single pass tubular reactors contain any internal mixing devices.
- the single pass tubular reactor includes external mixing
- such external mixing devices may be either static mixers or dynamic mixers. Any such external mixing device should be disposed before the single pass tubular reactor.
- it is possible to use both internal and external mixing devices it is preferred that only at least one external mixing device is employed and located before the single pass tubular reactor.
- the at least one single pass tubular reactor may consist of
- h) optionally at least one means for heating or cooling the reaction mixture, for instance heating or cooling jackets, internal cooling tubes, external heating elements, and
- the dimensions of the at least one single pass reactor are not particularly limited.
- the dimensions of the single pass tubular reactor should normally depend on the required residence time and required production capacity.
- the single pass tubular reactor may have a volume capacity of between 0.1 m 3 and 100 m 3 .
- the single pass tubular reactor may com- prise at least one vessel having a diameter of at least 0.2 cm, usually greater than 0.4 cm, for instance from 1 cm to 20 cm. Often it may be desirable that the diameter of the at least one single pass tubular reactor is greater than the at least one mixed flow reactor.
- the reaction mixture should progress through the single pass tubular reactor such that most of the volume of reaction mixture remains in the reactor for sufficient time to ensure significant conversion of the monomer to polymer. It is believed that the reaction mixture flows through the single pass tubular reactor with laminar flow.
- substantially none of the reaction mixture exits the single pass tubular reactor less than 0.5 of the mean residence time of the reaction mixture in a single pass tubular reactor.
- substantially none we mean normally less than 20% of the reaction mixture by vol- ume, usually less than 10%, often less than 5%, for instance less than 2%.
- substantially none of the reaction mixture exits the single pass tubular reactor less than 0.6 of the mean residence time, preferably less than 0.7 of the mean residence time.
- reactor system of the present invention there should be at least one mixed flow reactor and at least one single pass tubular reactor. Where there are more than one mixed flow reactors they should be arranged in series and where there are more than one single pass tubular reactors they should also be arranged in series. Further, the one or more mixed flow reactors should precede the one or more single pass tubular reactors. Suitably there may be as many as 10 or 15 or more mixed flow reactors but usually there would be from 1 to 10 mixed flow reactors. In some cases it may be desirable to employ from 1 to 5, more desirably from 2 to 4 mixed flow reactors. Desirably there may be as many as 5 or 10 or more single pass tubular reactors but normally there would be from 1 to 5 single pass tubular reactors. Typically the number of single pass tubular reactors may be from 1 to 3, more typically 1 or 2.
- the reactor system comprises
- the invention also provides that several reactor systems formed from several separate series of at least one mixed flow reactor and at least one single pass tubular reactor may be arranged in parallel. Such parallel arrangements of several reactor systems would facilitate increased production capabilities.
- At least one polymerisation initiator should be added to the reaction mixture in at least one place in the reactor system.
- at least one polymerisation initiator is added to the reaction mixture in at least two places wherein each polymerisation initiator addition is before each at least one mixed flow reactor and each at least one single pass tubular reactor.
- a separate addition of at least one polymerisation initiator is fed into the reaction mixture for every at least one mixed flow reactor and for every at least one single pass tubular reactor.
- each addition of the at least one polymerisation initiator is mixed into the reaction mixture before entering into at least one mixed flow reactor and before entering into at least one single pass tubular reactor. This may be achieved by using an in-line mixing device between the polymerisation initiator addition and the reactor.
- such an in-line mixing device may include a pump or other device for creating turbulence or other flow disruption to facilitate integration of the polymerisation initiator throughout the reaction mixture.
- the reaction mixture is passed through an in-line static mixer or an in-line dynamic mixer and the so treated reaction mixture flows into each at least one mixed flow reactor and each at least one single pass tubular reactor.
- the polymerisation initiators suitable for the present invention may include redox initiators, photo initiators, thermal initiators or combinations of two or more different types of initiators. For instance, it may be desirable to employ a combination of redox initiation and thermal initiators.
- thermal polymerisation techniques Such thermal polymerisation techniques and suitable initiators are well documented in the literature. Typically the initiators suitable for thermal polymerisation start to decay and form radicals at a given tem- perature. Suitable initiators include azo compounds, such as those mentioned below. However, thermal polymerisation techniques often require that the temperature of initiation is at least 40 or 50°C or more.
- azo compounds examples include 2,2'-azobisisobutyronitrile, 4,4'-azobis(4-cyanovaleric acid) and 2,2'-azobis(/V,/V-dimethyleneisobutyramidine) dihydrochloride, 2,2'-azo bis (2- methylpropionamidine) dihydrochloride (known as V50), 1 ,1 '-azobis(cyclohexanecarbonitrile), 2,2'-azobis(2-amidinopropane) dihydrochloride, 2,2'-Azobis ⁇ 2-[1 -(2-hydroxyethyl)-2-imidazolin- 2-yl]propane ⁇ dihydrochloride, 2,2'-Azobis(1 -imino-1 -pyrrolidino-2-ethylpropane)dihydrochloride and 2,2'-Azobis[2-methyl-N-(2-hydroxyethyl)-propionamide].
- Preferred thermal polymerisation initiators are
- the initiator may be a redox initiator system comprising a redox couple comprising an oxidising agent and a reducing agent.
- the oxidising agent may for instance be a peroxide or a persulphate.
- peroxides are hydrogen peroxide, potassium peroxide, di-te -butyl peroxide, te -butyl hydroperoxide, cumene hydroperoxide and di-benzoyl peroxide.
- persulphates are ammonium, sodium or potassium persulphate.
- examples of other oxidising agents include ammonium or alkali metal permanganates, ammonium or alkali metal chlorates or bromates.
- the reducing agent should generally be a compound containing an element in a reduced oxidation state.
- reducing agents are ascorbic acid, glucose or ammonium or alkali metal hydrogen sulphites, for instance sodium sulphite, ammonium or alkali metal thio- sulphates or sulphides or ferrous ammonium sulphate.
- the initiator may be a mixture of a redox couple and a thermal initiator, wherein the oxidizing agent is selected from the group consisting of peroxides and alkali metal bromates, and the reducing agent is selected from the group consisting of ammonium or alkali metal hy- drogen sulfite, sulfite, thiosulfate or sulfide, or ferrous ammonium sulfate, with one or more azo compound initiators.
- the oxidizing agent is selected from the group consisting of peroxides and alkali metal bromates
- the reducing agent is selected from the group consisting of ammonium or alkali metal hy- drogen sulfite, sulfite, thiosulfate or sulfide, or ferrous ammonium sulfate, with one or more azo compound initiators.
- the process may be conducted adiabatically or isothermally.
- adiabatically we mean that the temperature of the reaction medium increases at least by 50°C and usually at least 60 or 70°C over the course of the reaction. Typically such adiabatic processes may exhibit a temperature rise of from 10° to 80°C.
- isothermally we mean that there is essentially no temperature difference of the reaction medium over the course of the reaction. In some cases the process may be somewhere in between isothermal and adiabatic, for instance a temperature rise of the reac- tion medium between 0 and below 50°C over the course of reaction.
- the process is isothermal and the polymerisation temperature may be in the range from 1 to 120°C, preferably from 40 to 100°C, and more preferably from 60 to 90°C.
- the temperature of the polymerisation may also vary over the different stages of the polymerisation. For instance the temperature in the at least one single pass tubular reactor may be higher than the temperature in the at least one mixed flow reactors.
- the pressure in the reactor system may be from 0.1 to 500 bar, for instance from 0.1 to 100 bar, suitably between 1 and 40 bar but typically will be in the range of between 10 and 30 bar. Often the pressure would tend to be higher in the at least one single pass tubular reactor than in the at least one mixed flow reactors.
- the residence time of the reaction mixture in the reactor system may vary from a few minutes to several hours.
- the residence time may be less than 30 min but usually is at least 30 min.
- the residence time may be up to 5 or 6 hours or more.
- the residence time may vary from 30 min to 5 hours.
- an aqueous liquid which may be buffered to a desired pH as discussed above, is combined with the N-vinyl carboxamide monomer or mixture of monomers comprising the N-vinyl carboxamide to form the reaction mixture.
- This reaction mixture may be mixed by employing a static mixer or a dynamic mixer.
- static mixer we mean that the mixer contains fixed mixing elements which induce mixing of the reaction mixture as a result of the flow of the reaction mixture across the mixing elements.
- dynamic mixer we mean that the mixer contains moving mixing elements which actively bring about mixing of the reaction mixture.
- At least one polymerisation initiator is added into the reaction mixture before feeding the reaction mixture into a first mixed flow reactor. The so treated reaction mixture may be passed through a mixing stage before entering the first mixed flow reactor.
- the mixing stage may be achieved by employing a static mixer or a dynamic mixer as described above.
- at least one polymerisation initiator can be added into the mix flow reactor of step (c).
- the reaction mixture should then be flowed into said first mixed flow reactor and in which the monomer or monomer mixture in the reaction mixture polymerises as it passes through said first mixed flow reactor to form a partially polymerised reaction product within the reaction mixture.
- Said first mixed flow reactor may comprise in sequence a pump, a static or a dynamic mixer and a tubular vessel.
- a portion of the reaction mixture resulting from step (c) may be flowed in a recycle loop into the reaction mixture prior to entering the first mixed flow reactor.
- step (c) further at least one polymerisation initiator may be added to before feeding the reaction mixture into a second mixed flow reactor.
- the so treated reac- tion mixture is optionally passed through a mixing stage before entering said second mixed flow reactor.
- the mixing stage may be a static mixer or a dynamic mixer as described above.
- at least one polymerisation initiator can be added into the mix flow reactor of step (e).
- the reaction mixture resulting from step (d) desirably would be flowed into a second mixed flow reactor and in which the monomer or monomer mixture in the reaction mixture polymerises as it passes through the second mixed flow reactor to form a further polymerised reaction product within the reaction mixture.
- Said second mixed flow reactor may comprise in sequence a pump, a static or dynamic mixer and a tubular vessel. f) A portion of the reaction mixture resulting from step (e) may be flowed in a recycle loop to the reaction mixture before it enters the second mixed flow reactor. To the remainder of the reaction mixture resulting from step (e) further at least one polymerisation initiator is added. The so treated reaction mixture is optionally passed through a mixing stage before entering at least one single pass tubular reactor. The mixing stage may be a static mixer or a dynamic mixer as described above. g) The remaining reaction mixture of step (f) may then be flowed into the at least one single pass tubular reactor. The remaining monomer or monomer mixture in the reaction mixture should then polymerise as it passes through the at least one single pass tubular reactor. The polymer of N-vinyl carboxamide thereby results.
- the process conducted in accordance with the present invention may desirably be operated continuously.
- the process of the present invention may also provide for hydrolysing the so formed polymer of N-vinyl carboxamide to produce polymers containing repeating vinyl amine units.
- the polymer resulting from the final single pass tubular reactor may be heated in an aqueous medium in the presence of acids or bases.
- Such hydrolysis may be carried out by conventional methods known in the prior art, for instance as described in US 439 3174, EP 71050, US 462 3699, EP 339371 , US 494 3676, US 540 1808, US 532 4792, US 549 1 199.
- the process may be carried out by a continuous process, for instance as described in DE 1971 0212. In one preferred continuous process the polymers of N-vinyl carboxamide may be hydrolysed according to the teaching of WO 2010/052179.
- the present invention also includes an apparatus comprising a reactor system suitable for pro- ducing polymers of a N-vinyl carboxamide by polymerising N-vinyl carboxamide monomer or a monomer mixture comprising N-vinyl carboxamide contained in a aqueous reaction mixture, in which the reactor system comprises a series of reactor units comprising a combination of at least one mixed flow reactor and at least one single pass tubular reactor, wherein
- the at least one mixed flow reactor comprises at least one vessel containing internal and/or external means of mixing
- the at least one single pass tubular reactor comprises a tubular section disposed between two ends, at least one inlet and at least one outlet, in which the reactor system is arranged such that reaction mixture flows through the single pass tubular reactor only once, wherein the reactor system is provided in such a way that substantially none of the reaction mixture exits the single pass tubular reactor less than 0.5 of the mean residence time of the reaction mixture in a single pass tubular reactor.
- the apparatus in accordance with the present invention also incorporates any and all of the preferred embodiments described herein. Furthermore, in one preferred embodiment the apparatus of the present invention also additionally incorporates the means for hydrolysing the polymer of N-vinyl carboxamide.
- the present invention also includes a polymeric composition comprising a polymer of N-vinyl carboxamide which can be obtained by the process and apparatus defined herein.
- the present invention also relates to a polymeric composition comprising a polymer containing repeating vinyl amine units which may be obtained by the process and apparatus described herein.
- Figure 1 is a diagram showing the reactor system used in examples 1 and 2.
- Figure 2 is a graph showing the cumulative residence time distribution of the single pass tubular reactor section.
- the reactor apparatus used for this example is illustrated in Figure 1 .
- FIG 1 contains the following components:
- the apparatus contains a flow line with in series two mixed flow reactors followed by two single pass tubular reactors in series.
- the two mixed flow reactors are in each case, in sequence, a gear pump, a static mixer, a tubular vessel with recycle loop feeding reaction mixture back into the flow line ahead of the gear pump.
- the tubular vessels of the first and second mixed flow reactors, R1 and R2 are a cylindrical construction with a circular cross-section.
- the inner diameter of the tubular vessels of both mixed flow reactors are each 4 mm and the length of each are 10 m.
- the volume of the tubular vessels of both mixed flow reactors is 125.66 ml_.
- the subsequent two single pass tubular reactors, R3 and R4 are formed from tubular vessels with a cylindrical construction, each with two ends, and inlet and outlet and in which both tubular vessels have a cylindrical cross- section with an internal diameter of 4 mm and a length of 5 m, providing a volume of 62.83 ml_.
- Both of the two single pass tubular reactors were equipped with recycle loops or internal mixing components.
- the reactor apparatus was equipped with sample ports between the first and second mixed flow reactors, between the second mixed flow reactor and the first single pass tubular reactor, and between the first and second single pass tubular reactors.
- the monomer N-vinylformamide was mixed by being passed through a static mixer with the aqueous buffer solution to form a reaction mixture before an azo initiator, V50 (2,2'- azo bis (2-methylpropionamidine) dihydrochloride), available from Wako, was introduced into the reaction mixture and mixed using a static mixer.
- V50 2,2'- azo bis (2-methylpropionamidine) dihydrochloride
- Wako available from Wako
- Reaction mixture which was not recycled was passed into the second mixed flow reactor. Be- tween the first and second mixed flow reactors additional V50 was added into the reaction mixture.
- the second mixed flow reactor functioned in the same way as the first mixed flow reactor. Reaction mixture containing partially polymerised product exiting the second mixed flow reactor and not recycled was passed into the aforementioned first single pass tubular reactor. Before the two single tubular pass reactors additional initia- tor V50 was fed into the reaction mixture and in each case mixed into the reaction mixture by flowing the reaction mixture through static mixers before entering each of the single pass tubular reactors.
- the feed streams had the following composition:
- Example 2 The reactor apparatus used in Example 2 is shown in Figure 1. The apparatus used in Example 2 is shown in Figure 1. The apparatus used in Example 2 is shown in Figure 1. The apparatus used in Example 2 is shown in Figure 1.
- Example 2 only differed from the apparatus used in Example 1 in that the two tubular vessels of both mixed flow reactors have an inner diameter of 6 mm but hold the same volume.
- the process of Example 2 was carried out using the same starting materials including monomer, buffer and initiator and in the same way and under the same conditions as employed in Example 1 .
- the results of the analysis of the product exiting the first and second mixed flow reactors and the second single pass reactor are shown below in Table 3 and in Table 4. In Table 4 it can be seen that the residual monomer content is very stable over the duration of the experiment.
- the cumulative residence time distribution of the single pass tubular reactor section was measured under non-reactive conditions by means of a step experiment with a colored tracer. During the whole procedure, 148.0 mL/h of deionized water were directly fed to static mixer (18) and nothing was added via feed (20). During the first 3 hours, nothing was added via feed (17) so as to flush the system and achieve stable starting conditions. After that period, the measurement phase itself was initiated by adding 6.8 mL/h of a colored tracer solution via feed (17). Samples were collected at the outlet of the second single pass tubular reactor (23) at regular time intervals and the corresponding concentration of tracer was determined via UV spectroscopy. From these concentration measurements, the cumulative residence time distribution was computed according to usual formulae (e.g., O.
- K-Values were measured according to Fikentscher (Cellulosechemie, Band 13, 48-64 und 71 - 74) in aqueous solution at a concentration of 0.5%
- Residual monomer content was determined using an iodine titration method. About 0.5 g of the sample was weighed exactly and diluted with 250 ml of water then acidified with sulfuric acid and treated with an excess of a 0.05 molar iodine solution so that a visible coloration occurred. After 20 min reaction time the excess of iodine was titrated with a 0.1 molar solution of thiosul- fate. Starch was used as indicator.
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- Chemical & Material Sciences (AREA)
- Organic Chemistry (AREA)
- Chemical Kinetics & Catalysis (AREA)
- Health & Medical Sciences (AREA)
- Medicinal Chemistry (AREA)
- Polymers & Plastics (AREA)
- Polymerisation Methods In General (AREA)
- Addition Polymer Or Copolymer, Post-Treatments, Or Chemical Modifications (AREA)
Abstract
Priority Applications (4)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| US15/746,462 US10479851B2 (en) | 2015-07-24 | 2016-07-19 | Preparation of N-vinyl carboxamides in a series of reactor units |
| JP2018503577A JP6584633B2 (ja) | 2015-07-24 | 2016-07-19 | 連続した反応器ユニットにおけるn−ビニルカルボキサミドの製造 |
| EP16829922.0A EP3325521A4 (fr) | 2015-07-24 | 2016-07-19 | Préparation de n-vinylcarboxylamides dans des séries d'unités de réacteur |
| CN201680043177.7A CN107849175B (zh) | 2015-07-24 | 2016-07-19 | 在反应器单元系列中制备n-乙烯基羧酰胺 |
Applications Claiming Priority (2)
| Application Number | Priority Date | Filing Date | Title |
|---|---|---|---|
| EP15178174 | 2015-07-24 | ||
| EP15178174.7 | 2015-07-24 |
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| Publication Number | Publication Date |
|---|---|
| WO2017017559A1 true WO2017017559A1 (fr) | 2017-02-02 |
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ID=54011966
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| Application Number | Title | Priority Date | Filing Date |
|---|---|---|---|
| PCT/IB2016/054284 Ceased WO2017017559A1 (fr) | 2015-07-24 | 2016-07-19 | Préparation de n-vinylcarboxylamides dans des séries d'unités de réacteur |
Country Status (5)
| Country | Link |
|---|---|
| US (1) | US10479851B2 (fr) |
| EP (1) | EP3325521A4 (fr) |
| JP (1) | JP6584633B2 (fr) |
| CN (1) | CN107849175B (fr) |
| WO (1) | WO2017017559A1 (fr) |
Citations (4)
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|---|---|---|---|---|
| EP0683183A1 (fr) * | 1994-05-20 | 1995-11-22 | Air Products And Chemicals, Inc. | Produits d'addition michael de N-vinylformamide et esters d'acide acrylique et méthacrylique |
| DE19710212A1 (de) * | 1997-03-12 | 1998-09-17 | Basf Ag | Verfahren zur Herstellung von N-Vinylformamid-Polymerisaten und von Vinylamin-Einheiten enthaltenden Polymeren |
| WO2000002932A1 (fr) * | 1998-07-10 | 2000-01-20 | S. C. Johnson Commercial Markets, Inc. | Processus de production de polymeres par polymerisation radicalaire et reaction de condensation, et appareil et produits y relatifs |
| WO2010030372A2 (fr) * | 2008-09-12 | 2010-03-18 | Sekisui Specialty Chemicals America Llc | Procédé pour un copolymère nvf amélioré |
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| FI70230C (fi) | 1981-07-18 | 1986-09-15 | Basf Ag | Rakkedjiga basiska polymerisat foerfarande foer deras framstaellning och deras anvaendning |
| US4393174A (en) | 1981-11-09 | 1983-07-12 | Dynapol | Base hydrolysis of pendant amide polymers |
| DE3443461A1 (de) | 1984-11-29 | 1986-05-28 | Basf Ag, 6700 Ludwigshafen | Verfahren zur herstellung von pulverfoermigen, linearen, basischen polymerisaten |
| CA1330684C (fr) | 1988-04-15 | 1994-07-12 | Robert Krantz Pinschmidt Jr. | Methode pour la preparation de poly(alcool vinylique)-copoly(vinylamide) par un procede a deux etapes |
| US4943676A (en) | 1989-07-12 | 1990-07-24 | Air Products And Chemicals, Inc. | Thermolysis of poly(N-vinylformamide) to poly(N-vinylamine) |
| US5401808A (en) | 1993-03-25 | 1995-03-28 | Air Products And Chemicals, Inc. | Poly(vinylammonium formate) and process for making amidine-containing polymers |
| US5491199A (en) | 1995-02-22 | 1996-02-13 | Air Products And Chemicals, Inc. | One step production of low salt vinylamine polymers |
| TW201016724A (en) | 2008-07-08 | 2010-05-01 | Toray Industries | Process for production of thermoplastic copolymer |
| JP5584962B2 (ja) * | 2008-09-01 | 2014-09-10 | 三菱レイヨン株式会社 | N−ビニルカルボン酸アミド系重合体の製造方法 |
| EP2346907B1 (fr) | 2008-11-05 | 2016-09-07 | Basf Se | Procédé d'hydrolyse de polymères contenant des unités amide d'acide carboxylique vinylique |
| KR101783494B1 (ko) * | 2009-11-04 | 2017-09-29 | 바스프 에스이 | 폴리아크릴산 수용액의 제조 방법 |
| JP2015512981A (ja) * | 2012-03-09 | 2015-04-30 | ビーエーエスエフ ソシエタス・ヨーロピアBasf Se | ポリエーテルをベースとするグラフトポリマーを合成するための連続的方法 |
| US9068023B2 (en) | 2012-03-09 | 2015-06-30 | Basf Se | Continuous process for the synthesis of graft polymers based on polyethers |
| MY181716A (en) * | 2012-09-24 | 2021-01-05 | Exxonmobil Chemical Patents Inc | Apparatus and process for making high-pressure polyethylene polymers and copolymers |
| MX361798B (es) | 2013-04-16 | 2018-12-17 | Basf Se | Proceso continuo para la preparación de polímeros muy ramificados en base a ácido mono- o dicarboxílico c3-c8 etilénicamente insaturado o sus anhídridos y sales. |
-
2016
- 2016-07-19 JP JP2018503577A patent/JP6584633B2/ja not_active Expired - Fee Related
- 2016-07-19 US US15/746,462 patent/US10479851B2/en not_active Expired - Fee Related
- 2016-07-19 WO PCT/IB2016/054284 patent/WO2017017559A1/fr not_active Ceased
- 2016-07-19 CN CN201680043177.7A patent/CN107849175B/zh not_active Expired - Fee Related
- 2016-07-19 EP EP16829922.0A patent/EP3325521A4/fr not_active Withdrawn
Patent Citations (4)
| Publication number | Priority date | Publication date | Assignee | Title |
|---|---|---|---|---|
| EP0683183A1 (fr) * | 1994-05-20 | 1995-11-22 | Air Products And Chemicals, Inc. | Produits d'addition michael de N-vinylformamide et esters d'acide acrylique et méthacrylique |
| DE19710212A1 (de) * | 1997-03-12 | 1998-09-17 | Basf Ag | Verfahren zur Herstellung von N-Vinylformamid-Polymerisaten und von Vinylamin-Einheiten enthaltenden Polymeren |
| WO2000002932A1 (fr) * | 1998-07-10 | 2000-01-20 | S. C. Johnson Commercial Markets, Inc. | Processus de production de polymeres par polymerisation radicalaire et reaction de condensation, et appareil et produits y relatifs |
| WO2010030372A2 (fr) * | 2008-09-12 | 2010-03-18 | Sekisui Specialty Chemicals America Llc | Procédé pour un copolymère nvf amélioré |
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Also Published As
| Publication number | Publication date |
|---|---|
| US10479851B2 (en) | 2019-11-19 |
| JP2018521196A (ja) | 2018-08-02 |
| EP3325521A1 (fr) | 2018-05-30 |
| EP3325521A4 (fr) | 2019-01-23 |
| CN107849175B (zh) | 2020-12-04 |
| CN107849175A (zh) | 2018-03-27 |
| US20180208691A1 (en) | 2018-07-26 |
| JP6584633B2 (ja) | 2019-10-02 |
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